Resonant microtaper leaky-mode computational spectropolarimetry with tens of femtometers spectral resolution and full stokes measurement
Yangyang Wan, QianYu Zhou, Lin Ma, Xinyu Fan, Zuyuan He

TL;DR
This paper introduces a universal analytical model for computational optical measurement systems and demonstrates a resonant leaky-mode spectropolarimeter achieving record high spectral resolution, full Stokes polarization measurement, and compact size.
Contribution
The work presents a new theoretical framework linking system resolution to optical path difference and designs a novel RLM spectropolarimeter with unprecedented resolution and integration.
Findings
Achieved 0.02 pm spectral resolution
Demonstrated full Stokes polarization measurement
Realized high-performance measurement in a sub-square-millimeter footprint
Abstract
Emerging computational measurement techniques for acquiring multi-dimensional optical field information, such as spectrum and polarization, are rapidly advancing and offer promising solutions for realizing high-performance miniature systems. The performance of these computational measurement approaches is critically influenced by the choice of random media, yet a general framework for evaluating different implementations remains absent. Here, we propose a universal analytical model for computational measurement systems and reveal that the system resolution is fundamentally determined by the maximum optical path difference (OPD) permitted within the random medium. Building on this theoretical foundation, we present a resonant leaky-mode (RLM) spectropolarimeter that achieves a record high resolution-footprint-product metric. The RLM spectropolarimeter leverages the complex coupling…
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Taxonomy
TopicsOptical Polarization and Ellipsometry · Advanced Fiber Optic Sensors · Orbital Angular Momentum in Optics
